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WO 3/p-Type-GR Layered Materials for Promoted Photocatalytic Antibiotic Degradation and Device for Mechanism Insight

机译:WO 3 / p-Type-GR层状材料促进光催化抗生素降解及机理研究装置

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Graphene enhanced WO~(3)has recently become a promising material for various applications. The understanding of the transfer of charge carriers during the photocatalytic processes remains unclear because of their complexity. In this study, the characteristics of the deposited WO~(3)/graphene layered materials were investigated by Raman spectroscopy, UV–vis spectroscopy, and SEM. According to the results, p-graphene exhibits and enhances the characteristics of the WO~(3)/graphene film. The photocatalytic activities of WO~(3)/graphene layered materials were assessed by the photocatalytic degradation of oxytetracycline antibiotics as irradiated by UV light. Here, a higher current of cyclic voltammetry and a higher resistance of impedance spectra were obtained with the as-grown WO~(3)/graphene directly synthesized on Cu foils under UV light using an electrochemical method, which was different from traditional WO~(3)catalysts. Thus, it is urgent to explore the underlying mechanism in depth. In this study, a large layered material WO~(3)/graphene was fabricated on a Si substrate using a modified CVD method, and a WO~(3)/graphene device was developed by depositing a gold electrode material and compared with a WO~(3)device. Due to photo-induced doping effects, the current-voltage test suggested that the photo-resistance is larger than dark-resistance, and the photo-current is less than the dark current based on WO~(3)/graphene layered materials, which are significantly different from the characteristics of the WO~(3)layered material. A new pathway was developed here to analyze the transfer properties of carriers in the photocatalytic process.
机译:石墨烯增强的WO〜(3)最近已成为各种应用的有前途的材料。由于其复杂性,对光载流子中的载流子转移的理解仍然不清楚。在这项研究中,通过拉曼光谱,紫外可见光谱和SEM研究了沉积的WO〜(3)/石墨烯层状材料的特性。根据结果​​,对石墨烯表现出并增强了WO〜(3)/石墨烯膜的特性。通过紫外光照射下的土霉素抗生素的光催化降解,评价了WO〜(3)/石墨烯层状材料的光催化活性。在这里,使用电化学方法在紫外光下直接在铜箔上合成的WO〜(3)/石墨烯可以直接合成成膜的WO〜(3)/石墨烯,从而获得更高的循环伏安电流和更高的阻抗谱电阻,这与传统的WO〜( 3)催化剂。因此,迫切需要深入研究其潜在机制。在这项研究中,使用改进的CVD方法在Si衬底上制备了大层材料WO〜(3)/石墨烯,并通过沉积金电极材料开发了WO〜(3)/石墨烯器件,并将其与WO进行了比较。 〜(3)设备。由于光诱导的掺杂效应,电流电压测试表明,基于WO〜(3)/石墨烯层状材料,光阻大于暗阻,光电流小于暗电流,这是因为与WO〜(3)层材料的特性明显不同。这里开发了一种新的途径来分析载体在光催化过程中的转移特性。

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